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A versatile strategy for production of membrane proteins with diverse topologies: application to investigation of bacterial homologues of human divalent metal ion and nucleoside transporters

机译:一种生产具有多种拓扑结构的膜蛋白的通用策略:应用于研究人类二价金属离子和核苷转运蛋白的细菌同源物

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摘要

Membrane proteins play key roles in many biological processes, from acquisition of nutrients to neurotransmission, and are targets for more than 50% of current therapeutic drugs. However, their investigation is hampered by difficulties in their production and purification on a scale suitable for structural studies. In particular, the nature and location of affinity tags introduced for the purification of recombinant membrane proteins can greatly influence their expression levels by affecting their membrane insertion. The extent of such effects typically depends on the transmembrane topologies of the proteins, which for proteins of unknown structure are usually uncertain. For example, attachment of oligohistidine tags to the periplasmic termini of membrane proteins often interferes with folding and drastically impairs expression in Escherichia coli. To circumvent this problem we have employed a novel strategy to enable the rapid production of constructs bearing a range of different affinity tags compatible with either cytoplasmic or periplasmic attachment. Tags include conventional oligohistidine tags compatible with cytoplasmic attachment and, for attachment to proteins with a periplasmic terminus, either tandem Strep-tag II sequences or oligohistidine tags fused to maltose binding protein and a signal sequence. Inclusion of cleavage sites for TEV or HRV-3C protease enables tag removal prior to crystallisation trials or a second step of purification. Together with the use of bioinformatic approaches to identify members of membrane protein families with topologies favourable to cytoplasmic tagging, this has enabled us to express and purify multiple bacterial membrane transporters. To illustrate this strategy, we describe here its use to purify bacterial homologues of human membrane proteins from the Nramp and ZIP families of divalent metal cation transporters and from the concentrative nucleoside transporter family. The proteins are expressed in E. coli in a correctly folded, functional state and can be purified in amounts suitable for structural investigations.
机译:膜蛋白在许多生物过程中(从获取营养素到神经传递)都起着关键作用,并且是目前50%以上治疗药物的目标。但是,由于难以在适合结构研究的规模上进行生产和纯化,因此妨碍了他们的研究。特别地,为纯化重组膜蛋白而引入的亲和标签的性质和位置可通过影响其膜的插入而极大地影响其表达水平。这种影响的程度通常取决于蛋白质的跨膜拓扑,对于未知结构的蛋白质而言,这通常是不确定的。例如,寡聚组氨酸标签附着在膜蛋白的周质末端通常会干扰折叠并大大损害大肠杆菌中的表达。为了解决这个问题,我们采用了一种新颖的策略,能够快速生产带有一系列与细胞质或周质附着兼容的不同亲和标签的构建体。标签包括与胞质附着相容的常规寡组氨酸标签,并且为了与具有周质末端的蛋白质附着,串联的Strep-tag II序列或与麦芽糖结合蛋白和信号序列融合的寡组氨酸标签。包含TEV或HRV-3C蛋白酶的切割位点可在结晶试验或第二步纯化之前去除标签。结合使用生物信息学方法鉴定具有有利于细胞质标记的拓扑结构的膜蛋白家族成员,这使我们能够表达和纯化多种细菌膜转运蛋白。为了说明该策略,我们在此描述其用于纯化二价金属阳离子转运蛋白的Nramp和ZIP家族以及浓缩核苷转运蛋白家族的人膜蛋白的细菌同源物的作用。蛋白质以正确折叠的功能状态在大肠杆菌中表达,可以纯化至适合结构研究的量。

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